Video Reshuffling with Narratives toward Effective Video Browsing

Wei Fu, Jinqiao Wang, Xiaobin Zhu, Hanqing Lu, Songde Ma
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引用次数: 1

Abstract

With the rapid increasing of video cameras, large amount of video data everyday brings the problem of video storage and browsing. In this paper, we propose a novel approach to video reshuffling with a group of static images to effectively summarize the video content. Each static image called narrative is generated to depict the behavior of a specific object or a special event. Firstly background subtraction and object tracking are employed to extract the segmentations of moving objects and corresponding trajectories. After that, we apply three sampling rules to optimized select representative object samples from the spatial-temporal object tube and stitch them to the background image by Poisson blending. Experimental results show the promise of the proposed approach.
视频重组与叙事走向有效的视频浏览
随着摄像机数量的迅速增加,每天大量的视频数据带来了视频存储和浏览的问题。在本文中,我们提出了一种新的视频重组方法,利用一组静态图像来有效地总结视频内容。每一个被称为叙事的静态图像都是用来描述一个特定对象或一个特殊事件的行为。首先采用背景减法和目标跟踪方法提取运动目标的分割和相应的运动轨迹;然后,应用三种采样规则从时空目标管中优化选择具有代表性的目标样本,并通过泊松混合将其拼接到背景图像中。实验结果表明了该方法的可行性。
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